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Cardoso Mestre, M.

Publications and source records attributed to Cardoso Mestre, M..

2 recordsLinked to original sources

Maximising imaging volumes of expanded tissues for inverted fluorescence microscopy

Expansion microscopy (ExM) has enabled nanoscale imaging of tissues by physically enlarging biological samples in a swellable hydrogel. However, the increased sample size and water-based environment pose challenges for deep imaging using conventional inverted confocal microscopes, particularly due to the limited working distance of high-numerical aperture (NA) water immersion objectives. Here, we introduce a practical imaging alternative that utilizes an inverted water-dipping objective and a refractive-index-matched optical path using fluorinated ethylene propylene (FEP) film. Through point spread function (PSF) measurements and simulations, we show that the FEP film introduces predominantly defocus-like wavefront profiles characteristic of high NA systems, which result in an easily correctable axial shift of the focal plane. To ensure stable immersion and refractive index continuity, we use an arrangement relying on an FEP film, Immersol W, water and a FEP-based imaging dish. This configuration achieves sub-micron lateral and axial resolution, supports large tile-scan acquisitions, and maintains image quality across depths exceeding 800 {micro}m. We validate the system by imaging 4x-expanded U2OS cells and human cerebral organoids. Our approach provides a low-cost, plug-and-play solution for high-resolution volumetric imaging of expanded samples using standard inverted microscopes.

biophysics↗

Direct-view oblique plane microscopy

The ability to rapidly image mesoscopic samples is critically important for many areas of biological research. Owing to its high through-put and gentle, volumetric imaging nature, light-sheet fluorescence microscopy (LSFM) is an attractive modality to image such samples. However, the orthogonal dual-objective geometry of LSFM makes sample mounting challenging. Oblique plane microscopy (OPM) circumvents these issues by achieving light-sheet imaging through a single objective near the sample, with a further two objectives acting to image a tilted, oblique plane in the specimen. However, at low magnification, as required for mesoscopic imaging, conventional OPM systems suffer from a complicated and inefficient light path and/or a limited numerical aperture. Here we present a simple method for mesoscopic OPM that enables efficient light collection at any numerical aperture. By placing the camera directly in the remote space, the oblique plane can be imaged without the need for a third microscope system. Using a commercially available camera with 1.4 {micro}m pixels, we demonstrate imaging over a 5.3 x 3 x 2.6 mm3 field of view with a lateral resolution of [~]2 {micro}m and axial resolution of [~]22 {micro}m. Our technique is then used to image a 4x-expanded brain organoid.

biophysics↗